Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I need to write some kernel module for my university classes and now I'm trying to understand various kernel mechanisms that I have to use. One of them are wait queues. I wrote a simple module that registers a /proc entry and does some simple logic inside its read function:

DECLARE_WAIT_QUEUE_HEAD(event);

volatile int condvar = 0;
volatile int should_wait = 1;

int simple_read_proc(char *page, char **start, off_t offset, int count, int *eof, void *data) {
    printk(KERN_INFO "simple_read_proc from %i\n", current->pid);
    if(should_wait == 1) {
        printk(KERN_INFO "Waiting in %i\n", current->pid);
        should_wait = 0;
        wait_event_interruptible(event, condvar == 1);
        printk(KERN_INFO "Wait finished in %i\n", current->pid);
        condvar = 0;
        return sprintf(page, "%s", "The wait has finished!\n");
    } else {
        printk(KERN_INFO "Waking up in %i\n", current->pid);
        condvar = 1;
        wake_up_interruptible(&event);
        return sprintf(page, "%s", "Woke up the other process!\n");
    }
}

This is what happens when I try to run cat twice on the registered /proc file:

First cat process waits for the second one to wake him up. Second cat process does exactly that. Each process prints what it should. So far, everything as planned. But then I look into dmesg and that is what I see:

[11405.484168] Initializing proc_module
[11413.209535] simple_read_proc from 6497
[11413.209543] Waiting in 6497
[11415.498482] simple_read_proc from 6499
[11415.498489] Waking up in 6499
[11415.498507] simple_read_proc from 6499
[11415.498514] Wait finished in 6497
[11415.498518] Waking up in 6499
[11415.498546] simple_read_proc from 6497
[11415.498550] Waking up in 6497
[11415.498554] simple_read_proc from 6497
[11415.498557] Waking up in 6497
[11415.498689] simple_read_proc from 6499
[11415.498694] Waking up in 6499
[11415.498753] simple_read_proc from 6497
[11415.498757] Waking up in 6497

My question is: why the simple_read_proc function was invoked so many times? I thought that this may be because cat invoked read many times, but I checked it with strace and this is not the case - each cat invoked read only once.

I would be grateful for some explanation of this phenomenon.

share|improve this question
up vote 2 down vote accepted

Look at the comment in fs/proc/generic.c about "How to be a proc read function." Since you are not changing eof, the loop in __proc_file_read will call your read_proc function multiple times.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.